HR: 0800h
AN: H31C-0396 [Abstracts]
TI: Proposed Great Salt Lake Basin Hydrologic Observatory
AU: * Johnson, W P
EM: wjohnson@mines.utah.edu
AF: University of Utah
Department of Geology & Geophysics, 135 South 1460 East, Salt Lake City, UT 84112
United States
AU: Tarboton, D G
EM: david.tarboton@usu.edu
AF: Department of Civil & Environmental Engineering
Utah Water Research Laboratory, Utah State University, Logan, UT 84322-4110
United States
AB:
The dynamic physiography and population growth within the Great Salt Lake Basin provide the opportunity to observe climate
and human-induced land-surface changes affecting water availability, water quality, and water use, thereby making the Great
Salt Lake Basin a microcosm of contemporary water resource issues and an excellent site to pursue interdisciplinary and
integrated hydrologic science. Important societal concerns center on: How do climate variability and human-induced landscape
changes affect hydrologic processes, water quality and availability, and aquatic ecosystems over a range of scales? What are
the resource, social, and economic consequences of these changes?
The steep topography and large climatic gradients of the Great Salt Lake Basin yield hydrologic systems that are dominated by
non-linear interactions between snow deposition and snow melt in the mountains, stream flow and groundwater recharge in the
mid-elevations, and evaporative losses from the desert floor at lower elevations. Because the Great Salt Lake Basin
terminates in a closed basin lake, it is uniquely suited to closing the water, solute, and sediment balances in a way that is
rarely possible in a watershed of a size sufficient for coupling to investigations of atmospheric processes. Proposed
infrastructure will include representative densely instrumented focus areas that will be nested within a basin-wide network,
thereby quantifying fluxes, residence times, pathways, and storage volumes over a range of scales and land uses. The
significant and rapid ongoing urbanization presents the opportunity for observations that quantify the interactions among
hydrologic processes, human induced changes and social and economic dynamics.
One proposed focus area will be a unique, highly instrumented mountain-to-basin transect that will quantify hydrologic
processes extending from the mountain ridge top to the Great Salt Lake. The transect will range in elevation from about 1200
m to 3200 m, with a corresponding range in precipitation from about 15 cm/yr to 150 cm/yr, range in evapotranspiration
regimes from semi-arid to alpine, range in groundwater residence times from 10 to 10,000 years, and ranges in biome type from
semi-arid shrubland to alpine tundra, all within a 30 km distance. Atmospheric and surface fluxes and stores
(precipitation, evapotranspiration, snow, soil moisture) will be quantified using an array of in-situ surface stations and
remote sensing platforms. Deep (greater than 300 m) multilevel sampling wells will be used to measure ground water levels,
fluxes, and for sampling of age dating and environmental tracers. Another proposed focus effort will involve lake sediment
core analyses complemented by monitoring of dissolved and suspended constituents in surrounding tributaries, to provide a
basis for examination of closed basin lakes as integrators and recorders of biogeochemical signals that would otherwise not
be discerned based on discreet measurements made in individual tributary watersheds. Core-derived climate and
contaminant-nutrient trends through time will be investigated at locations distributed from the top to the bottom of the
hydrologic system.
UR: http://greatsaltlake.utah.edu
DE: 5104 Fracture and flow
DE: 6300 POLICY SCIENCES
DE: 3300 METEOROLOGY AND ATMOSPHERIC DYNAMICS
DE: 1800 HYDROLOGY
DE: 0400 Biogeosciences
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting